US11384593B2 - Induction-heating welding method for vacuum insulated glass - Google Patents

Induction-heating welding method for vacuum insulated glass Download PDF

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US11384593B2
US11384593B2 US16/607,182 US201816607182A US11384593B2 US 11384593 B2 US11384593 B2 US 11384593B2 US 201816607182 A US201816607182 A US 201816607182A US 11384593 B2 US11384593 B2 US 11384593B2
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metal layers
induction
width
metal layer
centerline
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US20200384559A1 (en
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Yanbing Li
Zhangsheng Wang
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Luoyang Landglass Technology Co Ltd
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Luoyang Landglass Technology Co Ltd
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K1/00Soldering, e.g. brazing, or unsoldering
    • B23K1/0008Soldering, e.g. brazing, or unsoldering specially adapted for particular articles or work
    • EFIXED CONSTRUCTIONS
    • E06DOORS, WINDOWS, SHUTTERS, OR ROLLER BLINDS IN GENERAL; LADDERS
    • E06BFIXED OR MOVABLE CLOSURES FOR OPENINGS IN BUILDINGS, VEHICLES, FENCES OR LIKE ENCLOSURES IN GENERAL, e.g. DOORS, WINDOWS, BLINDS, GATES
    • E06B3/00Window sashes, door leaves, or like elements for closing wall or like openings; Layout of fixed or moving closures, e.g. windows in wall or like openings; Features of rigidly-mounted outer frames relating to the mounting of wing frames
    • E06B3/66Units comprising two or more parallel glass or like panes permanently secured together
    • E06B3/6612Evacuated glazing units
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K1/00Soldering, e.g. brazing, or unsoldering
    • B23K1/002Soldering by means of induction heating
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K1/00Soldering, e.g. brazing, or unsoldering
    • B23K1/19Soldering, e.g. brazing, or unsoldering taking account of the properties of the materials to be soldered
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B23/00Re-forming shaped glass
    • C03B23/20Uniting glass pieces by fusing without substantial reshaping
    • C03B23/24Making hollow glass sheets or bricks
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03BMANUFACTURE, SHAPING, OR SUPPLEMENTARY PROCESSES
    • C03B23/00Re-forming shaped glass
    • C03B23/20Uniting glass pieces by fusing without substantial reshaping
    • C03B23/24Making hollow glass sheets or bricks
    • C03B23/245Hollow glass sheets
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03CCHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
    • C03C27/00Joining pieces of glass to pieces of other inorganic material; Joining glass to glass other than by fusing
    • C03C27/06Joining glass to glass by processes other than fusing
    • C03C27/08Joining glass to glass by processes other than fusing with the aid of intervening metal
    • CCHEMISTRY; METALLURGY
    • C03GLASS; MINERAL OR SLAG WOOL
    • C03CCHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
    • C03C27/00Joining pieces of glass to pieces of other inorganic material; Joining glass to glass other than by fusing
    • C03C27/06Joining glass to glass by processes other than fusing
    • C03C27/10Joining glass to glass by processes other than fusing with the aid of adhesive specially adapted for that purpose
    • EFIXED CONSTRUCTIONS
    • E06DOORS, WINDOWS, SHUTTERS, OR ROLLER BLINDS IN GENERAL; LADDERS
    • E06BFIXED OR MOVABLE CLOSURES FOR OPENINGS IN BUILDINGS, VEHICLES, FENCES OR LIKE ENCLOSURES IN GENERAL, e.g. DOORS, WINDOWS, BLINDS, GATES
    • E06B3/00Window sashes, door leaves, or like elements for closing wall or like openings; Layout of fixed or moving closures, e.g. windows in wall or like openings; Features of rigidly-mounted outer frames relating to the mounting of wing frames
    • E06B3/66Units comprising two or more parallel glass or like panes permanently secured together
    • EFIXED CONSTRUCTIONS
    • E06DOORS, WINDOWS, SHUTTERS, OR ROLLER BLINDS IN GENERAL; LADDERS
    • E06BFIXED OR MOVABLE CLOSURES FOR OPENINGS IN BUILDINGS, VEHICLES, FENCES OR LIKE ENCLOSURES IN GENERAL, e.g. DOORS, WINDOWS, BLINDS, GATES
    • E06B3/00Window sashes, door leaves, or like elements for closing wall or like openings; Layout of fixed or moving closures, e.g. windows in wall or like openings; Features of rigidly-mounted outer frames relating to the mounting of wing frames
    • E06B3/66Units comprising two or more parallel glass or like panes permanently secured together
    • E06B3/663Elements for spacing panes
    • E06B3/66309Section members positioned at the edges of the glazing unit
    • E06B3/66342Section members positioned at the edges of the glazing unit characterised by their sealed connection to the panes
    • E06B3/66357Soldered connections or the like
    • EFIXED CONSTRUCTIONS
    • E06DOORS, WINDOWS, SHUTTERS, OR ROLLER BLINDS IN GENERAL; LADDERS
    • E06BFIXED OR MOVABLE CLOSURES FOR OPENINGS IN BUILDINGS, VEHICLES, FENCES OR LIKE ENCLOSURES IN GENERAL, e.g. DOORS, WINDOWS, BLINDS, GATES
    • E06B3/00Window sashes, door leaves, or like elements for closing wall or like openings; Layout of fixed or moving closures, e.g. windows in wall or like openings; Features of rigidly-mounted outer frames relating to the mounting of wing frames
    • E06B3/66Units comprising two or more parallel glass or like panes permanently secured together
    • E06B3/673Assembling the units
    • E06B3/67326Assembling spacer elements with the panes
    • E06B3/67334Assembling spacer elements with the panes by soldering; Preparing the panes therefor
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23KSOLDERING OR UNSOLDERING; WELDING; CLADDING OR PLATING BY SOLDERING OR WELDING; CUTTING BY APPLYING HEAT LOCALLY, e.g. FLAME CUTTING; WORKING BY LASER BEAM
    • B23K2103/00Materials to be soldered, welded or cut
    • B23K2103/50Inorganic material, e.g. metals, not provided for in B23K2103/02 – B23K2103/26
    • B23K2103/54Glass
    • EFIXED CONSTRUCTIONS
    • E06DOORS, WINDOWS, SHUTTERS, OR ROLLER BLINDS IN GENERAL; LADDERS
    • E06BFIXED OR MOVABLE CLOSURES FOR OPENINGS IN BUILDINGS, VEHICLES, FENCES OR LIKE ENCLOSURES IN GENERAL, e.g. DOORS, WINDOWS, BLINDS, GATES
    • E06B3/00Window sashes, door leaves, or like elements for closing wall or like openings; Layout of fixed or moving closures, e.g. windows in wall or like openings; Features of rigidly-mounted outer frames relating to the mounting of wing frames
    • E06B3/66Units comprising two or more parallel glass or like panes permanently secured together
    • E06B3/663Elements for spacing panes
    • E06B3/66309Section members positioned at the edges of the glazing unit
    • E06B3/66333Section members positioned at the edges of the glazing unit of unusual substances, e.g. wood or other fibrous materials, glass or other transparent materials
    • E06B2003/66338Section members positioned at the edges of the glazing unit of unusual substances, e.g. wood or other fibrous materials, glass or other transparent materials of glass
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02ATECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
    • Y02A30/00Adapting or protecting infrastructure or their operation
    • Y02A30/24Structural elements or technologies for improving thermal insulation
    • Y02A30/249Glazing, e.g. vacuum glazing
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B80/00Architectural or constructional elements improving the thermal performance of buildings
    • Y02B80/22Glazing, e.g. vaccum glazing

Definitions

  • the present disclosure relates to the technical field of vacuum insulated glass, and in particular to an induction-heating welding method for vacuum insulated glass.
  • Vacuum insulated glass is an emerging category of glass, and is generally composed of two pieces of glass, between which is a vacuum layer. Due to the existence of this vacuum layer, vacuum insulated glass has good performance in sound insulation, thermal insulation and condensation resistance, and is more in line with the national development requirements for energy conservation and environmental protection.
  • the sealing quality of vacuum insulated glass directly affects the performance of vacuum insulated glass.
  • the sealing of vacuum insulated glass mainly adopts two methods: one is sealing with low-melting-point glass powder, and the other is sealing with metal.
  • metal is used for sealing, metal layers are firstly prepared at the edge portions of the facing surfaces of the two glass substrates, and then a brazing process is used to firmly connect the metal layers with the solder, thereby achieving airtight sealing of the two glass substrates.
  • a brazing solder can be heated by the high-frequency induction heating, and a high-frequency induction welding head is formed by coiling a high-frequency induction coil, as shown in FIG. 1 .
  • a centerline of the high-frequency induction welding head is aligned with a centerline of a welding strip, and the high-frequency induction welding head moves forward at a uniform speed along the centerline of the welding strip, thereby achieving airtight welding around the vacuum insulated glass.
  • the high-frequency induction welding head Since the solder and the metal layers coexist in the sealing region, in addition to heating the solder, the high-frequency induction welding head also heats the metal layers in the sealing region during the operation. In the actual production process, it is found that the glass substrate often has an over-burning phenomenon in the corner regions of metal layers, referring to the position of the high-frequency induction welding head in FIG. 2 , so that the bonding strength between the metal layers and the glass substrate is greatly reduced.
  • the metal layers are silver film layers sintered on the glass substrates
  • the silver in the silver films in the corner regions of the glass substrates is fused into the brazing solder with overheating, so that the welding strength of the produced vacuum insulated glass at the corner regions is greatly reduced, thereby affecting the welding reliability and service life of the vacuum insulated glass.
  • a high-frequency induction welding head necessarily has a deceleration-redirection-acceleration process in a corner region; therefore, the induction heating time of the internal corner portion of the corner region of the vacuum insulated glass is too long, and a heating speed of the edge of the metal layer in the heating process is significantly greater than that of the center of the metal layer.
  • This is a main cause for over-burning of the metal layer in the corner region; and the over-burning of the internal corner portions of the corner regions is especially serious.
  • the inventors have also found through research that, in theory, the above problem may be solved by reducing the power of induction heating, increasing a moving speed of the high-frequency induction welding head, and changing a distance between the high-frequency induction welding head and the metal layers.
  • the above-mentioned means has low operability, and has certain but not obvious effects.
  • the present disclosure aims to provide induction-heating welding methods for vacuum insulated glass. For example, the relative position between a movement route of a center of the high-frequency induction welding head and a centerline of a width of metal layers is changed, so that the movement route of the high-frequency induction welding head's center deviates from the centerline of the width of the metal layers, and thus induction power of the metal layers in corner regions is reduced, thereby avoiding the over-burning phenomenon of the metal layers in the corner regions.
  • the corner region is defined as follows: a region where a centerline of a width of the metal layer changes a direction is a corner region.
  • the vacuum insulated glass comprises an upper glass substrate and a lower glass substrate.
  • a metal layer is prepared in the upper glass substrate's region to be sealed and the lower glass substrate's region to be sealed, respectively.
  • a continuous solder is distributed on the metal layer in the lower glass substrate's region to be sealed.
  • the upper and lower glass substrates are superposed.
  • a high-frequency induction welding head's center moves forward along a centerline of a width of the metal layers; during induction heating of corner regions of the metal layers, a relative position between a movement route of the center of the high-frequency induction welding head and the centerline of the width of the metal layer is changed, so that the movement route of the high-frequency induction welding head's center deviates from the centerline of the width of the metal layers, and thus reducing the induction power of the metal layers in the corner regions and avoiding overheating of the metal layers in the corner regions.
  • a manner of changing the relative position between a movement route of the center of the high-frequency induction welding head and the centerline of the width of the metal layer is that: the movement route of the center of the high-frequency induction welding head in the corner regions is located at an outer side of the centerline of the width of the metal layer.
  • Another manner of changing the relative position between a movement route of the center of the high-frequency induction welding head and the centerline of the width of the metal layer is that: changing a shape of the metal layers such that an inner edge and an outer edge of the metal layers in the corner regions are both arc-shaped.
  • an arc radius of the inner edge of the metal layers in the corner regions is r
  • an arc radius of the outer edge of the metal layers in the corner regions is R
  • a width of a straight segment of the metal layers is d
  • d R ⁇ r.
  • the width of the metal layers is about 8 mm
  • the arc radius of the inner edge of the metal layers in the corner regions is about 3 mm
  • the arc radius of the outer edge of the metal layers in the corner regions is about 11 mm.
  • the metal layer disposed in the glass substrate's region to be sealed is in a shape of a circular ring, a width of the circular ring is d, a radius of the inner circle of the circular ring is r, the movement route of the center of the high-frequency induction welding head is a circle concentric with the circular ring, a radius of the circle formed by the movement route is R′, and r+d/2 ⁇ R′ ⁇ r+d.
  • the relative position between the movement route of the center of the high-frequency induction welding head and the centerline of the width of the metal layers is changed, so that a distance of the movement route of the high-frequency induction welding head's center deviating from the centerline of the width of the metal layers is less than a half of the width of the metal layers.
  • the relative position of the movement route of the center of the high-frequency induction welding head and the centerline of the width of the metal layers is changed, so that the movement route of the center of the high-frequency induction welding head deviates from the centerline of the width of the metal layers, and thus reducing the induction power of the metal layers in the corner regions and avoiding the over-burning of the metal layers.
  • the sealing performance of the sealing regions is improved, the qualification rate of the product is increased, and the service life of the vacuum insulated glass is prolonged.
  • FIG. 1 is a schematic view of an exemplary embodiment of high-frequency induction welding head
  • FIG. 2 is a schematic view of induction heating welding in the prior art
  • FIG. 3 is a schematic view of welding of an exemplary embodiment 1;
  • FIG. 4 is an enlarged schematic view of Region A in FIG. 3 ;
  • FIG. 5 is a schematic view of welding of an exemplary embodiment 2
  • FIG. 6 is a schematic view of welding of an exemplary embodiment 3
  • FIG. 7 is a schematic view of welding of an exemplary embodiment 4.
  • FIG. 8 is a schematic view of welding of an exemplary embodiment 5.
  • 1 denotes a glass substrate
  • 2 denotes a metal layer
  • 21 denotes an outer edge of the metal layer in a corner region
  • 22 denotes an inner edge of the metal layer in a corner region
  • 23 denotes a centerline of a width of the metal layer
  • 3 denotes a high-frequency induction welding head
  • 4 denotes a movement route of the high-frequency induction welding head.
  • spatially relative terms such as “above”, “below”, “left”, and “right” may be used herein to describe a relationship between one element or feature and another element or feature shown in the figure. It should be understood that such spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the figures. For example, if the device in the figure is turned over, an element or feature described as being “below” and another element or feature will be “above” the other element or feature. Therefore, the exemplary term “below” may encompass both the above and below orientations. The device may also be oriented in other ways (for example, rotated 90 degrees or at other orientations), and the spatially relative terms used herein can be interpreted accordingly.
  • FIG. 3 and FIG. 4 show a first exemplary embodiment of an induction-heating welding method for vacuum insulated glass according to the present disclosure.
  • a glass substrate 1 to be sealed is a glass having a square surface
  • a metal layer 2 is previously disposed in a sealing region around the glass substrate 1
  • an inner edge and an outer edge of the metal layer 2 in each of the 4 corner regions are right-angled
  • a continuous solder is distributed on the metal layer 2 .
  • a high-frequency induction welding head 3 moves forward at a uniform speed while a center of the high-frequency induction welding head 3 is aligned with a centerline of a width of the metal layer 2 , and a movement route 4 thereof is a straight line.
  • the movement route 4 of the high-frequency induction welding head 3 is offset to an outer side, so that the center of the high-frequency induction welding head 3 deviates from the centerline of the width of the metal layer 2 in the moving process, and thus reducing the induction power of the metal layer 2 in the corner region.
  • the deviation distance should be less than a half of a width of the metal layer 2 .
  • FIG. 5 shows a second exemplary embodiment of an induction-heating welding method for vacuum insulated glass according to the present disclosure.
  • a glass substrate 1 to be sealed is a glass having a square surface
  • a metal layer 2 is previously disposed in a sealing region around the glass substrate 1
  • a continuous solder is distributed on the metal layer 2 .
  • a high-frequency induction welding head 3 moves forward at a uniform speed while a center of the high-frequency induction welding head 3 is aligned with a centerline of a width of the metal layer 2 , and the movement route 4 thereof is a straight line.
  • the movement route of the high-frequency induction welding head 3 is kept unchanged.
  • the sides of the closed pattern are formed by connecting centerlines of the width of the metal layer 2 when the centerlines intersect.
  • an outer edge 21 and an inner edge 22 of the metal layer in the corner region are arc-shaped, so that a center of the high-frequency induction welding head 3 deviates outwardly from the centerline of the metal layer 2 in the moving process, and thus reducing the induction power of the metal layer 2 in the corner region.
  • the deviation distance should be less than a half of a width of the metal layer 2 .
  • the width of the metal layer is preferably about 8 mm
  • an arc radius of the inner edge of the metal layer in the corner region is preferably about 3 mm
  • an arc radius of the outer edge of the metal layer in the corner region is preferably about 11 mm.
  • FIG. 6 shows a third exemplary embodiment of an induction-heating welding method for vacuum insulated glass according to the present disclosure.
  • a surface of a glass substrate 1 to be sealed is in a shape of a circle
  • a metal layer 2 in a shape of a circular ring is previously disposed in a sealing region around the glass substrate 1
  • a width of the circular ring is d
  • a radius of an inner circle of the circular ring is r.
  • the metal layer 2 in this embodiment has no straight segment, but is all corner regions.
  • a welding method for the corner regions is substantially the same as that described in Embodiment 1.
  • the movement route 4 of the high-frequency induction welding head 3 is offset to an outer side, so that a centerline of the high-frequency induction welding head 3 deviates from a centerline 23 of a width of the metal layer 2 in the moving process, and thus reducing the induction power of the metal layer 2 in the corner regions .
  • the movement route of the high-frequency induction welding head 3 ′s center is a circle concentric with the circular ring-shaped metal layer 2 , the radius of the circle formed by the movement route is R′, and r+d/2 ⁇ R′ ⁇ r+d.
  • FIG. 7 shows a fourth exemplary embodiment of an induction-heating welding method for vacuum insulated glass according to the present disclosure.
  • the welding manner is substantially the same as that described in Embodiment 1, except that a surface of a glass substrate 1 in this embodiment is in the shape of a trapezoid.
  • FIG. 8 shows a fifth exemplary embodiment of an induction-heating welding method for vacuum insulated glass according to the present disclosure.
  • the welding manner is substantially the same as that described in Embodiment 1, except that the surface of the glass substrate 1 in this embodiment is in the shape of a triangle.

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  • Materials Engineering (AREA)
  • Mechanical Engineering (AREA)
  • Civil Engineering (AREA)
  • Structural Engineering (AREA)
  • Organic Chemistry (AREA)
  • Ceramic Engineering (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • General Chemical & Material Sciences (AREA)
  • Geochemistry & Mineralogy (AREA)
  • Life Sciences & Earth Sciences (AREA)
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  • Manufacture Of Electron Tubes, Discharge Lamp Vessels, Lead-In Wires, And The Like (AREA)

Abstract

An induction-heating welding method for vacuum insulated glass comprising upper and lower glass substrates is disclosed. Metal layers are prepared in regions to be sealed for the upper and lower glass substrates. A continuous solder is distributed on the metal layer in the lower glass substrate's region to be sealed. The upper and lower glass substrates are superposed. During welding, a high-frequency induction welding head's center moves forward along a centerline of a width of the metal layers; during induction heating of the metal layers in a corner region, a relative position between a movement route of the high-frequency induction welding head's center and the centerline of the width of the metal layers is changed, so that the movement route deviates from the centerline of the width of the metal layers, and thus reducing induction power and avoiding overheating of the metal layers in the corner region.

Description

CLAIMS FOR PRIORITY
This application is a U.S. national phase entry under 35 U.S.C. § 371 from PCT International Application No. PCT/CN2018/081812 filed on Apr. 4, 2018, which is based upon and claims the benefit of priority from the prior Chinese Patent Application No. 201710282659.4 filed on Apr. 26, 2017. The entire contents of the above applications are incorporated herein by reference.
BACKGROUND Technical Field
The present disclosure relates to the technical field of vacuum insulated glass, and in particular to an induction-heating welding method for vacuum insulated glass.
Background
Vacuum insulated glass is an emerging category of glass, and is generally composed of two pieces of glass, between which is a vacuum layer. Due to the existence of this vacuum layer, vacuum insulated glass has good performance in sound insulation, thermal insulation and condensation resistance, and is more in line with the national development requirements for energy conservation and environmental protection.
The sealing quality of vacuum insulated glass directly affects the performance of vacuum insulated glass. At present, the sealing of vacuum insulated glass mainly adopts two methods: one is sealing with low-melting-point glass powder, and the other is sealing with metal. When the metal is used for sealing, metal layers are firstly prepared at the edge portions of the facing surfaces of the two glass substrates, and then a brazing process is used to firmly connect the metal layers with the solder, thereby achieving airtight sealing of the two glass substrates.
In the sealing process, a brazing solder can be heated by the high-frequency induction heating, and a high-frequency induction welding head is formed by coiling a high-frequency induction coil, as shown in FIG. 1. In a welding process, a centerline of the high-frequency induction welding head is aligned with a centerline of a welding strip, and the high-frequency induction welding head moves forward at a uniform speed along the centerline of the welding strip, thereby achieving airtight welding around the vacuum insulated glass.
Since the solder and the metal layers coexist in the sealing region, in addition to heating the solder, the high-frequency induction welding head also heats the metal layers in the sealing region during the operation. In the actual production process, it is found that the glass substrate often has an over-burning phenomenon in the corner regions of metal layers, referring to the position of the high-frequency induction welding head in FIG. 2, so that the bonding strength between the metal layers and the glass substrate is greatly reduced. For example, when the metal layers are silver film layers sintered on the glass substrates, the silver in the silver films in the corner regions of the glass substrates is fused into the brazing solder with overheating, so that the welding strength of the produced vacuum insulated glass at the corner regions is greatly reduced, thereby affecting the welding reliability and service life of the vacuum insulated glass.
SUMMARY
In view of the problem that the induction-heating welding in conventional technologies results in the reduction in the welding strength at the corner of the vacuum insulated glass, the inventors have found through research that: a high-frequency induction welding head necessarily has a deceleration-redirection-acceleration process in a corner region; therefore, the induction heating time of the internal corner portion of the corner region of the vacuum insulated glass is too long, and a heating speed of the edge of the metal layer in the heating process is significantly greater than that of the center of the metal layer. This is a main cause for over-burning of the metal layer in the corner region; and the over-burning of the internal corner portions of the corner regions is especially serious. The inventors have also found through research that, in theory, the above problem may be solved by reducing the power of induction heating, increasing a moving speed of the high-frequency induction welding head, and changing a distance between the high-frequency induction welding head and the metal layers. In the actual implementation process, it is found that the above-mentioned means has low operability, and has certain but not obvious effects.
The present disclosure aims to provide induction-heating welding methods for vacuum insulated glass. For example, the relative position between a movement route of a center of the high-frequency induction welding head and a centerline of a width of metal layers is changed, so that the movement route of the high-frequency induction welding head's center deviates from the centerline of the width of the metal layers, and thus induction power of the metal layers in corner regions is reduced, thereby avoiding the over-burning phenomenon of the metal layers in the corner regions. The corner region is defined as follows: a region where a centerline of a width of the metal layer changes a direction is a corner region.
In order to achieve the above objectives, the present disclosure adopts the following technical solutions:
An induction-heating welding method for vacuum insulated glass is provided. The vacuum insulated glass comprises an upper glass substrate and a lower glass substrate. A metal layer is prepared in the upper glass substrate's region to be sealed and the lower glass substrate's region to be sealed, respectively. A continuous solder is distributed on the metal layer in the lower glass substrate's region to be sealed. The upper and lower glass substrates are superposed. During welding, a high-frequency induction welding head's center moves forward along a centerline of a width of the metal layers; during induction heating of corner regions of the metal layers, a relative position between a movement route of the center of the high-frequency induction welding head and the centerline of the width of the metal layer is changed, so that the movement route of the high-frequency induction welding head's center deviates from the centerline of the width of the metal layers, and thus reducing the induction power of the metal layers in the corner regions and avoiding overheating of the metal layers in the corner regions.
Further, a manner of changing the relative position between a movement route of the center of the high-frequency induction welding head and the centerline of the width of the metal layer is that: the movement route of the center of the high-frequency induction welding head in the corner regions is located at an outer side of the centerline of the width of the metal layer.
Further, another manner of changing the relative position between a movement route of the center of the high-frequency induction welding head and the centerline of the width of the metal layer is that: changing a shape of the metal layers such that an inner edge and an outer edge of the metal layers in the corner regions are both arc-shaped.
Further, an arc radius of the inner edge of the metal layers in the corner regions is r, an arc radius of the outer edge of the metal layers in the corner regions is R, a width of a straight segment of the metal layers is d, and d=R−r.
Further, the width of the metal layers is about 8 mm, the arc radius of the inner edge of the metal layers in the corner regions is about 3 mm, and the arc radius of the outer edge of the metal layers in the corner regions is about 11 mm.
Further, when a surface of a glass substrate is in a shape of a circle, the metal layer disposed in the glass substrate's region to be sealed is in a shape of a circular ring, a width of the circular ring is d, a radius of the inner circle of the circular ring is r, the movement route of the center of the high-frequency induction welding head is a circle concentric with the circular ring, a radius of the circle formed by the movement route is R′, and r+d/2<R′<r+d.
Further, the relative position between the movement route of the center of the high-frequency induction welding head and the centerline of the width of the metal layers is changed, so that a distance of the movement route of the high-frequency induction welding head's center deviating from the centerline of the width of the metal layers is less than a half of the width of the metal layers.
According to the above methods, the relative position of the movement route of the center of the high-frequency induction welding head and the centerline of the width of the metal layers is changed, so that the movement route of the center of the high-frequency induction welding head deviates from the centerline of the width of the metal layers, and thus reducing the induction power of the metal layers in the corner regions and avoiding the over-burning of the metal layers. For the vacuum insulated glass obtained according to the present disclosures, the sealing performance of the sealing regions is improved, the qualification rate of the product is increased, and the service life of the vacuum insulated glass is prolonged.
BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 is a schematic view of an exemplary embodiment of high-frequency induction welding head;
FIG. 2 is a schematic view of induction heating welding in the prior art;
FIG. 3 is a schematic view of welding of an exemplary embodiment 1;
FIG. 4 is an enlarged schematic view of Region A in FIG. 3;
FIG. 5 is a schematic view of welding of an exemplary embodiment 2;
FIG. 6 is a schematic view of welding of an exemplary embodiment 3;
FIG. 7 is a schematic view of welding of an exemplary embodiment 4; and
FIG. 8 is a schematic view of welding of an exemplary embodiment 5.
In the figures, 1 denotes a glass substrate, 2 denotes a metal layer, 21 denotes an outer edge of the metal layer in a corner region, 22 denotes an inner edge of the metal layer in a corner region, 23 denotes a centerline of a width of the metal layer, 3 denotes a high-frequency induction welding head, 4 denotes a movement route of the high-frequency induction welding head.
DETAILED DESCRIPTION
The present disclosure is described below in a more comprehensive manner through embodiments. The present invention may be embodied in various forms, and should not be limited to the exemplary embodiments described herein.
For ease of description, spatially relative terms such as “above”, “below”, “left”, and “right” may be used herein to describe a relationship between one element or feature and another element or feature shown in the figure. It should be understood that such spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the figures. For example, if the device in the figure is turned over, an element or feature described as being “below” and another element or feature will be “above” the other element or feature. Therefore, the exemplary term “below” may encompass both the above and below orientations. The device may also be oriented in other ways (for example, rotated 90 degrees or at other orientations), and the spatially relative terms used herein can be interpreted accordingly.
Embodiment 1
FIG. 3 and FIG. 4 show a first exemplary embodiment of an induction-heating welding method for vacuum insulated glass according to the present disclosure. In this embodiment, a glass substrate 1 to be sealed is a glass having a square surface, a metal layer 2 is previously disposed in a sealing region around the glass substrate 1, an inner edge and an outer edge of the metal layer 2 in each of the 4 corner regions are right-angled, and a continuous solder is distributed on the metal layer 2. During welding of a straight segment of the metal layer 2, a high-frequency induction welding head 3 moves forward at a uniform speed while a center of the high-frequency induction welding head 3 is aligned with a centerline of a width of the metal layer 2, and a movement route 4 thereof is a straight line. During welding of a corner region of the metal layer 2, the movement route 4 of the high-frequency induction welding head 3 is offset to an outer side, so that the center of the high-frequency induction welding head 3 deviates from the centerline of the width of the metal layer 2 in the moving process, and thus reducing the induction power of the metal layer 2 in the corner region. The deviation distance should be less than a half of a width of the metal layer 2.
Embodiment 2
FIG. 5 shows a second exemplary embodiment of an induction-heating welding method for vacuum insulated glass according to the present disclosure. In this embodiment, a glass substrate 1 to be sealed is a glass having a square surface, a metal layer 2 is previously disposed in a sealing region around the glass substrate 1, and a continuous solder is distributed on the metal layer 2. During welding of a straight segment of the metal layer 2, a high-frequency induction welding head 3 moves forward at a uniform speed while a center of the high-frequency induction welding head 3 is aligned with a centerline of a width of the metal layer 2, and the movement route 4 thereof is a straight line. During welding of a corner region of the metal layer 2, the movement route of the high-frequency induction welding head 3 is kept unchanged. As shown in FIG. 5, the sides of the closed pattern are formed by connecting centerlines of the width of the metal layer 2 when the centerlines intersect. By changing a shape of the metal layer 2 in a corner region, an outer edge 21 and an inner edge 22 of the metal layer in the corner region are arc-shaped, so that a center of the high-frequency induction welding head 3 deviates outwardly from the centerline of the metal layer 2 in the moving process, and thus reducing the induction power of the metal layer 2 in the corner region. The deviation distance should be less than a half of a width of the metal layer 2. The width of the metal layer is preferably about 8 mm, an arc radius of the inner edge of the metal layer in the corner region is preferably about 3 mm, and an arc radius of the outer edge of the metal layer in the corner region is preferably about 11 mm.
Embodiment 3
FIG. 6 shows a third exemplary embodiment of an induction-heating welding method for vacuum insulated glass according to the present disclosure. In this embodiment, a surface of a glass substrate 1 to be sealed is in a shape of a circle, a metal layer 2 in a shape of a circular ring is previously disposed in a sealing region around the glass substrate 1, a width of the circular ring is d, and a radius of an inner circle of the circular ring is r. The metal layer 2 in this embodiment has no straight segment, but is all corner regions. A welding method for the corner regions is substantially the same as that described in Embodiment 1. The movement route 4 of the high-frequency induction welding head 3 is offset to an outer side, so that a centerline of the high-frequency induction welding head 3 deviates from a centerline 23 of a width of the metal layer 2 in the moving process, and thus reducing the induction power of the metal layer 2 in the corner regions . The movement route of the high-frequency induction welding head 3′s center is a circle concentric with the circular ring-shaped metal layer 2, the radius of the circle formed by the movement route is R′, and r+d/2<R′<r+d.
Embodiment 4
FIG. 7 shows a fourth exemplary embodiment of an induction-heating welding method for vacuum insulated glass according to the present disclosure. The welding manner is substantially the same as that described in Embodiment 1, except that a surface of a glass substrate 1 in this embodiment is in the shape of a trapezoid.
Embodiment 5
FIG. 8 shows a fifth exemplary embodiment of an induction-heating welding method for vacuum insulated glass according to the present disclosure. The welding manner is substantially the same as that described in Embodiment 1, except that the surface of the glass substrate 1 in this embodiment is in the shape of a triangle.
Although several preferred embodiments of this application have been described above with reference to the accompanying drawings, this application is not limited thereto. Any improvement and/or variation made by a person of ordinary skill in the art without departing from the spirit of this application shall fall within the protection scope of this application.

Claims (8)

What is claimed is:
1. An induction-heating welding method for a vacuum insulated glass, wherein the vacuum insulated glass comprises an upper glass substrate and a lower glass substrate, comprising:
preparing a metal layer in the upper glass substrate's region to be sealed and in the lower glass substrate's region to be sealed, respectively;
distributing a continuous solder on the metal layer in the lower glass substrate's region to be sealed;
superposing the upper glass substrate and the lower glass substrate; and
performing induction-heating welding on the vacuum insulated glass's regions to be sealed, a center of a high-frequency induction welding head moving forward along a centerline of a width of the metal layers during welding,
wherein:
during induction heating of a corner region of the metal layers, changing a relative position between a movement route of a center of the high-frequency induction welding head and the centerline of the width of the metal layers, and
deviating the movement route of the center of the high-frequency induction welding head from the centerline of the width of the metal layers, thereby reducing induction power and avoiding overheating of the metal layers in the corner regions.
2. The induction-heating welding method according to claim 1, wherein changing the relative position between the movement route of the center of the high-frequency induction welding head and the centerline of the width of the metal layers comprises:
placing the movement route of the center of the high-frequency induction welding head in the corner regions in an outer side of the centerline of the width of the metal layers.
3. The induction-heating welding method according to claim 1, wherein changing the relative position between the movement route of the center of the high-frequency induction welding head and the centerline of the width of the metal layers comprises:
changing a shape of the metal layers such that an inner edge and an outer edge of the metal layers in the corner region are arc-shaped.
4. The induction-heating welding method according to claim 3, wherein an arc radius of the inner edge of the metal layer in the corner region is r, an arc radius of the outer edge of the metal layer in the corner region is R, a width of a straight segment of the metal layer is d, and d=R-r.
5. The induction-heating welding method according to claim 4, wherein the width of the straight segment of the metal layers is about 8 mm, the arc radius of the inner edge of the metal layer in the corner region is about 3 mm, and the arc radius of the outer edge of the metal layer in the corner region is about 11 mm.
6. The induction-heating welding method according to claim 1, wherein a surface of each of the upper and lower glass substrates is in a shape of a circle, the metal layer disposed in each of the upper and lower glass substrates' region to be sealed is in a shape of a circular ring, a width of the circular ring is d, a radius of an inner circle of the circular ring is r, the movement route of the high-frequency induction welding head's center is a circle concentric with the circular ring, a radius of the circle formed by the movement route is R′, and r+d/2<R′<r+d.
7. The induction-heating welding method according to claim 1, wherein changing the relative position between the movement route of the center of the high-frequency induction welding head and the centerline of the width of the metal layers, so that a distance of the movement route of the center of the high-frequency induction welding head deviating from the centerline of the width of the metal layers is less than a half of the width of the metal layers.
8. A vacuum insulated glass product, comprising:
an upper glass substrate and a lower glass substrate;
a metal layer in each of the upper and lower glass substrates; and
a continuous solder on the metal layer of the lower glass substrate,
wherein induction-heating welding on the metal layers is performed according to any of the above method claims.
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Families Citing this family (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN207002586U (en) 2017-04-26 2018-02-13 洛阳兰迪玻璃机器股份有限公司 A kind of vacuum glass product
CN109494196B (en) * 2018-12-21 2021-01-01 西安赛尔电子材料科技有限公司 High-silicon aluminum alloy packaging shell and manufacturing method thereof
CN114735952A (en) * 2021-01-08 2022-07-12 洛阳兰迪玻璃机器股份有限公司 Vacuum glass sealing method, vacuum glass and solder strip for vacuum glass sealing
CN115703166A (en) * 2021-08-04 2023-02-17 大族激光科技产业集团股份有限公司 Method and laser welding equipment for semiconductor laser welding OLED
CN114541933A (en) * 2022-04-08 2022-05-27 四川零零昊科技有限公司 Edge sealing structure and edge sealing method for vacuum glass
CN115745429A (en) * 2022-11-23 2023-03-07 四川零零昊科技有限公司 Vacuum glass online sealing system, online sealing method and continuous production system

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2235680A (en) * 1937-07-14 1941-03-18 Libbey Owens Ford Glass Co Multiple glass sheet glazing unit and method of making the same
US5985069A (en) 1996-10-11 1999-11-16 Fujitsu Limited Method of manufacturing a flat display panel and flat display panel
CN102079619A (en) 2009-11-27 2011-06-01 洛阳兰迪玻璃机器有限公司 Glass plate combination sealing method
US20140216645A1 (en) 2013-02-04 2014-08-07 Semiconductor Energy Laboratory Co., Ltd. Method for Forming Glass Layer and Method for Manufacturing Sealed Structure
CN106277850A (en) 2015-05-24 2017-01-04 上海微电子装备有限公司 laser quasi synchronous scanning method
CN107417140A (en) 2017-04-26 2017-12-01 洛阳兰迪玻璃机器股份有限公司 A kind of sensing heating welding method of vacuum glass

Family Cites Families (22)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2624979A (en) * 1950-03-14 1953-01-13 Pittsburgh Corning Corp Method of producing welded double glazed units
JPH11268934A (en) * 1998-03-24 1999-10-05 Asahi Glass Co Ltd Manufacturing method of vacuum double glazing
CN100482605C (en) * 2004-09-08 2009-04-29 淮安市淮阴辉煌真空镀膜有限公司 A New Method for Manufacturing Laminated Vacuum Glass
US7371143B2 (en) * 2004-10-20 2008-05-13 Corning Incorporated Optimization of parameters for sealing organic emitting light diode (OLED) displays
DE102007029031A1 (en) * 2007-06-23 2008-12-24 Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. Method for permanently connecting two components by soldering with glass or metal solder
CN101215076B (en) * 2008-01-07 2012-07-04 左树森 Method for preparing vacuum glass
KR20100110544A (en) * 2009-04-03 2010-10-13 김현승 Electric heater using high frequency induction heating
JP2011011925A (en) * 2009-06-30 2011-01-20 Asahi Glass Co Ltd Glass member with sealing material layer, electronic device using the same and method for producing the electronic device
CN102079632A (en) * 2009-11-27 2011-06-01 洛阳兰迪玻璃机器有限公司 Vacuum glass sealing method and vacuum glass products
CN102020415B (en) * 2010-03-02 2014-06-04 青岛亨达玻璃科技有限公司 Arc-shaped vacuum glass
JP2012041196A (en) * 2010-08-12 2012-03-01 Asahi Glass Co Ltd Glass member with sealing material layer, electronic device using the same, and method for producing the electronic device
CN102452801B (en) * 2010-10-29 2016-05-25 洛阳兰迪玻璃机器股份有限公司 A kind of vacuum glass sealing method and products thereof
CN102476926B (en) * 2010-11-23 2013-12-18 洛阳兰迪玻璃机器股份有限公司 Vacuum glass sealing device
WO2012075724A1 (en) * 2010-12-10 2012-06-14 Luoyang Landglass Technology Co., Ltd. Vacuum glass component
US9784027B2 (en) * 2013-12-31 2017-10-10 Guardian Glass, LLC Vacuum insulating glass (VIG) unit with metallic peripheral edge seal and/or methods of making the same
CN105669006A (en) * 2014-11-19 2016-06-15 戴长虹 Compound sealed vacuum glass insulation panel and preparation method thereof
CN105645743A (en) * 2014-11-19 2016-06-08 戴长虹 Vacuum glass with two or a plurality of paths of sealing and a preparing method thereof
CN104478202A (en) * 2014-12-19 2015-04-01 洛阳兰迪玻璃机器股份有限公司 Vacuum glass sealing method and vacuum glass product
CN104591527B (en) * 2015-02-09 2017-07-04 王磊 A kind of vacuum glass preparation method of rear support
US20180305972A1 (en) * 2015-02-11 2018-10-25 Astravac Glass, Inc. Vacuum insulated glass unit with glass-to-metal seal and methods of assembling same
CN105906222B (en) * 2016-07-05 2018-08-31 洛阳兰迪玻璃机器股份有限公司 A kind of toughened vacuum glass
CN110207961B (en) * 2019-05-21 2020-08-21 南京航空航天大学 Air cannon test device and method for accurately striking inner position of narrow space

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2235680A (en) * 1937-07-14 1941-03-18 Libbey Owens Ford Glass Co Multiple glass sheet glazing unit and method of making the same
US5985069A (en) 1996-10-11 1999-11-16 Fujitsu Limited Method of manufacturing a flat display panel and flat display panel
CN102079619A (en) 2009-11-27 2011-06-01 洛阳兰迪玻璃机器有限公司 Glass plate combination sealing method
US20140216645A1 (en) 2013-02-04 2014-08-07 Semiconductor Energy Laboratory Co., Ltd. Method for Forming Glass Layer and Method for Manufacturing Sealed Structure
CN106277850A (en) 2015-05-24 2017-01-04 上海微电子装备有限公司 laser quasi synchronous scanning method
CN107417140A (en) 2017-04-26 2017-12-01 洛阳兰迪玻璃机器股份有限公司 A kind of sensing heating welding method of vacuum glass
US20200378177A1 (en) * 2017-04-26 2020-12-03 Luoyang Landglass Technology Co., Ltd. Vacuum Insulated Glass Product

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
International Search Report dated Jun. 27, 2018, issued in corresponding International Patent Application No. PCT/CN2018/081812.

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